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How can I send and receive values?

What is it that I'm doing wrong?

jQuery: on click of save button

$("#budget_submit").click(function(){       
        var budget = $("#budget_cardno").val();
        $.ajax({
            type: 'POST',
            dataType: "json",
            url: 'budget.php',
            data: budget,
            success: function(data){
                if(data.success == true)
                alert(data.message);
        }
        });
    });

html:

<form method="post" id="budgetform">
   <fieldset>
      <ul>
    <li>
      <label>CARD NUMBER</label>
      <input name="budget_cardno" id="budget_cardno" />
    </li>
    <li>
      <label>MONTHLY BUDGET</label>
      <input name="budget_monthly" id="budget_monthly" />
    </li>
    <li>
      <input class="submit" id="budget_submit" name="budget_submit" type="submit" value="Save"/>
        </li>
      </ul>
   </fieldset>
</form>

Php:

<?php 
$dbhost = '#';
$dbuser = '#';
$dbpass = '#';
$conn = mysql_connect($dbhost, $dbuser, $dbpass);
if(! $conn )
{
    die('Could not connect: ' . mysql_error());
}

$cardNo = $_POST['budget'];     #This statement does not work.
if($cardNo == "")
{
    mysql_close($conn);
    $data = array('success' => true, 'message' => 'ENTER DETAILS');
    echo json_encode($data);
}

else
{
}
?>

how can I send the value budget to the PHP file and store it in $cardNo and return the message?

I don't want to check for the condition at the client side because I have other conditions to check which needs data from database.

share|improve this question
    
you can check the $_POST received by the php script by using echo print_r($_POST); it will tell you the key and the value of the data received (if any). I don'T see any trouble at first glance. You might want to consider using cosole tools like firebug or something similar to see what is sent and retuned. –  Louis Loudog Trottier Nov 18 '12 at 2:59

2 Answers 2

actually this seems weird to me.

if($cardNo == "")
{
    mysql_close($conn);
    $data = array('success' => true, 'message' => 'ENTER DETAILS');
    echo json_encode($data);
}

This will trigger only if the value is EMPTY. So if you send a value, it won't trigger since the statement is false. Change your == to != so it state: if $cardNo IS NOT EMPTY like so:

if($cardNo != "")
{
    mysql_close($conn);
    $data = array('success' => true, 'message' => 'ENTER DETAILS');
    echo json_encode($data);
}
share|improve this answer
    
further more, i sugest you start using mysqli instead of mysql as it is (or soon will be) deprecated. –  Louis Loudog Trottier Nov 18 '12 at 3:05
    
I'm just checking whether the code works for empty value. The actual condition is different from the one I posted. –  Newbie Nov 18 '12 at 3:05

I think the problem is that you're treating the incoming data as a normal form, when in fact you're sending JSON. PHP is therefore not finding any $_POST parameter with name 'budget'.

You need to get the raw post data using file_get_contents('php://input'); and then use json_decode() to convert it into an object. From it you could then get the budget parameter.

So something like this should work:

$formdata = file_get_contents('php://input');
$formdata_obj = json_decode($formdata);

$cardNo = $formdata_obj->budget;

If you're actually just sending one value (as you seem to be doing) the first line alone might suffice, because the whole data would be the value itself rather than a JSON encoded object:

$cardNo = file_get_contents('php://input');
share|improve this answer
    
Just saw the same thing over here. –  Louis Loudog Trottier Nov 18 '12 at 3:09
    
@jbx: how to use file_get_contents('php://input'); –  Newbie Nov 18 '12 at 3:19
    
@codebeginner Well you just put it in your PHP file no?! –  jbx Nov 18 '12 at 3:21
    
@jbx: $requestBody = file_get_contents('php://input'); $requestBody = json_decode($requestBody); $cardNo = $requestBody -> budget; –  Newbie Nov 18 '12 at 3:23
    
@jbx It still doesn't work –  Newbie Nov 18 '12 at 3:25

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